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1.
Circulation ; 147(17): 1291-1303, 2023 04 25.
Article in English | MEDLINE | ID: mdl-36970983

ABSTRACT

BACKGROUND: During cardiomyocyte maturation, the centrosome, which functions as a microtubule organizing center in cardiomyocytes, undergoes dramatic structural reorganization where its components reorganize from being localized at the centriole to the nuclear envelope. This developmentally programmed process, referred to as centrosome reduction, has been previously associated with cell cycle exit. However, understanding of how this process influences cardiomyocyte cell biology, and whether its disruption results in human cardiac disease, remains unknown. We studied this phenomenon in an infant with a rare case of infantile dilated cardiomyopathy (iDCM) who presented with left ventricular ejection fraction of 18% and disrupted sarcomere and mitochondria structure. METHODS: We performed an analysis beginning with an infant who presented with a rare case of iDCM. We derived induced pluripotent stem cells from the patient to model iDCM in vitro. We performed whole exome sequencing on the patient and his parents for causal gene analysis. CRISPR/Cas9-mediated gene knockout and correction in vitro were used to confirm whole exome sequencing results. Zebrafish and Drosophila models were used for in vivo validation of the causal gene. Matrigel mattress technology and single-cell RNA sequencing were used to characterize iDCM cardiomyocytes further. RESULTS: Whole exome sequencing and CRISPR/Cas9 gene knockout/correction identified RTTN, the gene encoding the centrosomal protein RTTN (rotatin), as the causal gene underlying the patient's condition, representing the first time a centrosome defect has been implicated in a nonsyndromic dilated cardiomyopathy. Genetic knockdowns in zebrafish and Drosophila confirmed an evolutionarily conserved requirement of RTTN for cardiac structure and function. Single-cell RNA sequencing of iDCM cardiomyocytes showed impaired maturation of iDCM cardiomyocytes, which underlie the observed cardiomyocyte structural and functional deficits. We also observed persistent localization of the centrosome at the centriole, contrasting with expected programmed perinuclear reorganization, which led to subsequent global microtubule network defects. In addition, we identified a small molecule that restored centrosome reorganization and improved the structure and contractility of iDCM cardiomyocytes. CONCLUSIONS: This study is the first to demonstrate a case of human disease caused by a defect in centrosome reduction. We also uncovered a novel role for RTTN in perinatal cardiac development and identified a potential therapeutic strategy for centrosome-related iDCM. Future study aimed at identifying variants in centrosome components may uncover additional contributors to human cardiac disease.


Subject(s)
Cardiomyopathy, Dilated , Female , Pregnancy , Animals , Humans , Cardiomyopathy, Dilated/genetics , Zebrafish , Stroke Volume , Ventricular Function, Left , Centrosome/metabolism , Myocytes, Cardiac
2.
Hepatology ; 65(5): 1526-1542, 2017 05.
Article in English | MEDLINE | ID: mdl-28027591

ABSTRACT

The transmembrane 6 superfamily member 2 (TM6SF2) loss-of-function variant rs58542926 is a genetic risk factor for nonalcoholic fatty liver disease and progression to fibrosis but is paradoxically associated with lower levels of hepatically derived triglyceride-rich lipoproteins. TM6SF2 is expressed predominantly in liver and small intestine, sites for triglyceride-rich lipoprotein biogenesis and export. In light of this, we hypothesized that TM6SF2 may exhibit analogous effects on both liver and intestine lipid homeostasis. To test this, we genotyped rs58542926 in 983 bariatric surgery patients from the Geisinger Medical Center for Nutrition and Weight Management, Geisinger Health System, in Pennsylvania and from 3,556 study participants enrolled in the Amish Complex Disease Research Program. Although these two cohorts have different metabolic profiles, carriers in both cohorts had improved fasting lipid profiles. Importantly, following a high-fat challenge, carriers in the Amish Complex Disease Research Program cohort exhibited significantly lower postprandial serum triglycerides, suggestive of a role for TM6SF2 in the small intestine. To gain further insight into this putative role, effects of TM6SF2 deficiency were studied in a zebrafish model and in cultured human Caco-2 enterocytes. In both systems TM6SF2 deficiency resulted in defects in small intestine metabolism in response to dietary lipids, including significantly increased lipid accumulation, decreased lipid clearance, and increased endoplasmic reticulum stress. CONCLUSIONS: These data strongly support a role of TM6SF2 in the regulation of postprandial lipemia, potentially through a similar function for TM6SF2 in the lipidation and/or export of both hepatically and intestinally derived triglyceride-rich lipoproteins. (Hepatology 2017;65:1526-1542).


Subject(s)
Endoplasmic Reticulum Stress , Intestine, Small/metabolism , Lipid Metabolism/genetics , Liver/metabolism , Membrane Proteins/genetics , Animals , Base Sequence , Caco-2 Cells , Enterocytes/metabolism , Fatty Liver/genetics , Female , Hepatocytes/metabolism , Homeostasis , Humans , Intestine, Small/ultrastructure , Male , Membrane Proteins/metabolism , Mice , Middle Aged , Molecular Sequence Data , Polymorphism, Single Nucleotide , Postprandial Period , Triglycerides/biosynthesis , Triglycerides/blood , Tunicamycin , Zebrafish
3.
EBioMedicine ; 8: 49-59, 2016 Jun.
Article in English | MEDLINE | ID: mdl-27428418

ABSTRACT

Excess lipid storage is an epidemic problem in human populations. Thus, the identification of small molecules to treat or prevent lipid storage-related metabolic complications is of great interest. Here we screened >320.000 compounds for their ability to prevent a cellular lipid accumulation phenotype. We used fly cells because the multifarious tools available for this organism should facilitate unraveling the mechanism-of-action of active small molecules. Of the several hundred lipid storage inhibitors identified in the primary screen we concentrated on three structurally diverse and potent compound classes active in cells of multiple species (including human) and negligible cytotoxicity. Together with Drosophila in vivo epistasis experiments, RNA-Seq expression profiles suggested that the target of one of the small molecules was diacylglycerol acyltransferase 1 (DGAT1), a key enzyme in the production of triacylglycerols and prominent human drug target. We confirmed this prediction by biochemical and enzymatic activity tests.


Subject(s)
Diacylglycerol O-Acyltransferase/metabolism , Enzyme Inhibitors/metabolism , Genomics , Animals , COS Cells , Cell Differentiation/drug effects , Cell Line , Chlorocebus aethiops , Diacylglycerol O-Acyltransferase/antagonists & inhibitors , Diacylglycerol O-Acyltransferase/genetics , Drosophila/metabolism , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Epistasis, Genetic , Fatty Acids/metabolism , Female , Humans , Lipid Peroxidation , Male , Mice , Phenotype , Pyrroles/chemistry , Pyrroles/metabolism , Pyrroles/pharmacology , Sequence Analysis, RNA , Small Molecule Libraries/chemistry , Small Molecule Libraries/metabolism , Small Molecule Libraries/pharmacology , Structure-Activity Relationship
4.
N Engl J Med ; 370(24): 2307-2315, 2014 Jun 12.
Article in English | MEDLINE | ID: mdl-24848981

ABSTRACT

BACKGROUND: Lipolysis regulates energy homeostasis through the hydrolysis of intracellular triglycerides and the release of fatty acids for use as energy substrates or lipid mediators in cellular processes. Genes encoding proteins that regulate energy homeostasis through lipolysis are thus likely to play an important role in determining susceptibility to metabolic disorders. METHODS: We sequenced 12 lipolytic-pathway genes in Old Order Amish participants whose fasting serum triglyceride levels were at the extremes of the distribution and identified a novel 19-bp frameshift deletion in exon 9 of LIPE, encoding hormone-sensitive lipase (HSL), a key enzyme for lipolysis. We genotyped the deletion in DNA from 2738 Amish participants and performed association analyses to determine the effects of the deletion on metabolic traits. We also obtained biopsy specimens of abdominal subcutaneous adipose tissue from 2 study participants who were homozygous for the deletion (DD genotype), 10 who were heterozygous (ID genotype), and 7 who were noncarriers (II genotype) for assessment of adipose histologic characteristics, lipolysis, enzyme activity, cytokine release, and messenger RNA (mRNA) and protein levels. RESULTS: Carriers of the mutation had dyslipidemia, hepatic steatosis, systemic insulin resistance, and diabetes. In adipose tissue from study participants with the DD genotype, the mutation resulted in the absence of HSL protein, small adipocytes, impaired lipolysis, insulin resistance, and inflammation. Transcription factors responsive to peroxisome-proliferator-activated receptor γ (PPAR-γ) and downstream target genes were down-regulated in adipose tissue from participants with the DD genotype, altering the regulation of pathways influencing adipogenesis, insulin sensitivity, and lipid metabolism. CONCLUSIONS: These findings indicate the physiological significance of HSL in adipocyte function and the regulation of systemic lipid and glucose homeostasis and underscore the severe metabolic consequences of impaired lipolysis. (Funded by the National Institutes of Health and others).


Subject(s)
Diabetes Mellitus, Type 2/genetics , Frameshift Mutation , Genetic Predisposition to Disease , Lipolysis/genetics , Sterol Esterase/genetics , Adult , Aged , Amish/genetics , Diabetes Mellitus, Type 2/metabolism , Dyslipidemias/genetics , Dyslipidemias/metabolism , Female , Heterozygote , Humans , Insulin Resistance/genetics , Male , Metabolic Networks and Pathways/genetics , Middle Aged , Pedigree
5.
J Lipid Res ; 54(4): 953-65, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23345411

ABSTRACT

Presence of ectopic lipid droplets (LDs) in cardiac muscle is associated to lipotoxicity and tissue dysfunction. However, presence of LDs in heart is also observed in physiological conditions, such as when cellular energy needs and energy production from mitochondria fatty acid ß-oxidation are high (fasting). This suggests that development of tissue lipotoxicity and dysfunction is not simply due to the presence of LDs in cardiac muscle but due at least in part to alterations in LD function. To examine the function of cardiac LDs, we obtained transgenic mice with heart-specific perilipin 5 (Plin5) overexpression (MHC-Plin5), a member of the perilipin protein family. Hearts from MHC-Plin5 mice expressed at least 4-fold higher levels of plin5 and exhibited a 3.5-fold increase in triglyceride content versus nontransgenic littermates. Chronic cardiac excess of LDs was found to result in mild heart dysfunction with decreased expression of peroxisome proliferator-activated receptor (PPAR)α target genes, decreased mitochondria function, and left ventricular concentric hypertrophia. Lack of more severe heart function complications may have been prevented by a strong increased expression of oxidative-induced genes via NF-E2-related factor 2 antioxidative pathway. Perilipin 5 regulates the formation and stabilization of cardiac LDs, and it promotes cardiac steatosis without major heart function impairment.


Subject(s)
Cardiomyopathies/metabolism , Myocardium/metabolism , Myocytes, Cardiac/metabolism , Proteins/metabolism , Animals , Blotting, Western , Cardiomyopathies/genetics , Cell Line , Cricetinae , DNA, Mitochondrial/genetics , Mice , Mice, Transgenic , Microscopy, Electron, Transmission , Molecular Sequence Data , Perilipin-5 , Proteins/genetics , Reactive Oxygen Species/metabolism , Triglycerides/metabolism
6.
J Biol Chem ; 286(18): 15707-15, 2011 05 06.
Article in English | MEDLINE | ID: mdl-21393244

ABSTRACT

Lipolysis is a critical metabolic pathway contributing to energy homeostasis through degradation of triacylglycerides stored in lipid droplets (LDs), releasing fatty acids. Neutral lipid lipases act at the oil/water interface. In mammalian cells, LD surfaces are coated with one or more members of the perilipin protein family, which serve important functions in regulating lipolysis. We investigated mechanisms by which three perilipin proteins control lipolysis by adipocyte triglyceride lipase (ATGL), a key lipase in adipocytes and non-adipose cells. Using a cell culture model, we examined interactions of ATGL and its co-lipase CGI-58 with perilipin 1 (perilipin A), perilipin 2 (adipose differentiation-related protein), and perilipin 5 (LSDP5) using multiple techniques as follows: anisotropy Forster resonance energy transfer, co-immunoprecipitation, [(32)P]orthophosphate radiolabeling, and measurement of lipolysis. The results show that ATGL interacts with CGI-58 and perilipin 5; the latter is selectively expressed in oxidative tissues. Both proteins independently recruited ATGL to the LD surface, but with opposite effects; interaction of ATGL with CGI-58 increased lipolysis, whereas interaction of ATGL with perilipin 5 decreased lipolysis. In contrast, neither perilipin 1 nor 2 interacted directly with ATGL. Activation of protein kinase A (PKA) increased [(32)P]orthophosphate incorporation into perilipin 5 by 2-fold, whereas neither ATGL nor CGI-58 was labeled under the incubation conditions. Cells expressing both ectopic perilipin 5 and ATGL showed a 3-fold increase in lipolysis following activation of PKA. Our studies establish perilipin 5 as a novel ATGL partner and provide evidence that the protein composition of perilipins at the LD surface regulates lipolytic activity of ATGL.


Subject(s)
Adipocytes/metabolism , Energy Metabolism/physiology , Lipase/metabolism , Lipolysis/physiology , Phosphoproteins/metabolism , 1-Acylglycerol-3-Phosphate O-Acyltransferase/genetics , 1-Acylglycerol-3-Phosphate O-Acyltransferase/metabolism , 3T3-L1 Cells , Adipocytes/cytology , Animals , CHO Cells , Carrier Proteins , Cricetinae , Cricetulus , Cyclic AMP-Dependent Protein Kinases/genetics , Cyclic AMP-Dependent Protein Kinases/metabolism , Enzyme Activation/physiology , Humans , Lipase/genetics , Male , Mice , Oxidative Stress/physiology , Perilipin-1 , Phosphoproteins/genetics
7.
J Lipid Res ; 51(5): 1193-200, 2010 May.
Article in English | MEDLINE | ID: mdl-19965580

ABSTRACT

High fatty acid (FA) flux is associated with systemic insulin resistance, and African-American (AA) women tend to be more insulin resistant. We assessed possible depot and race difference in the antilipolytic effect of insulin in adipocytes isolated from abdominal (Abd) and gluteal (Glt) subcutaneous (sc) adipose tissue of overweight, postmenopausal AA and Caucasian (C) women. Percent body fat, fasting insulin, visceral adiposity, and adipocyte size was higher in AA women. Disinhibited lipolysis (presence of adenosine deaminase) per unit adipocyte surface area was similar in Abd and Glt and in AA and C. However, rates of 'basal' [submaximal phenylisopropyl adenosine (PIA)-suppressed] and insulin-suppressed lipolysis were higher in Abd of AA compared with C women even after adjustment for percent fat and visceral fat area. The race difference in rates of PIA- and insulin-suppressed lipolysis in AA were correlated with their hyperinsulinemia, but AA race, independent of fasting insulin, was associated with lower responsiveness (percent suppression) to submaximal insulin concentrations, although sensitivity (ED50) was not affected. Overall, these data are consistent with the hypothesis that decreased responsiveness of Abd adipocytes to antilipolytic effectors may contribute to higher FA availability and thereby to racial differences in insulin resistance.


Subject(s)
Adipocytes/metabolism , Black or African American , Insulin Resistance/ethnology , Insulin/metabolism , Lipolysis , Postmenopause/metabolism , White People , Abdominal Fat/drug effects , Abdominal Fat/metabolism , Adipocytes/drug effects , Adult , Aged , Buttocks , Fatty Acids, Nonesterified/metabolism , Female , Humans , Insulin/pharmacology , Isoproterenol/pharmacology , Lipolysis/drug effects , Middle Aged , Phenylisopropyladenosine/pharmacology
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